English

Chondrules from high-velocity collisions: thermal histories and the agglomeration problem

Earth and Planetary Astrophysics 2021-03-30 v5 Geophysics

Abstract

We assess whether chondrules, once-molten mm-sized spheres filling the oldest meteorites, could have formed from super-km/s collisions between planetesimals in the solar nebula. High-velocity collisions release hot and dense clouds of silicate vapor which entrain and heat chondrule precursors. Thermal histories of CB chondrules are reproduced for colliding bodies \sim10--100 km in radius. The slower cooling rates of non-CB, porphyritic chondrules point to colliders with radii \gtrsim 500 km. How chondrules, collisionally dispersed into the nebula, agglomerated into meteorite parent bodies remains a mystery. The same orbital eccentricities and inclinations that enable energetic collisions prevent planetesimals from re-accreting chondrules efficiently and without damage; thus the sedimentary laminations of the CB/CH chondrite Isheyevo are hard to explain by direct fallback of collisional ejecta. At the same time, planetesimal surfaces may be littered with the shattered remains of chondrules. The micron-sized igneous particles recovered from comet 81P/Wild-2 may have originated from in-situ collisions and subsequent accretion in the proto-Kuiper belt, obviating the need to transport igneous solids across the nebula. Asteroid sample returns from Hayabusa2 and OSIRIS-REx may similarly contain chondrule fragments.

Keywords

Cite

@article{arxiv.2009.10093,
  title  = {Chondrules from high-velocity collisions: thermal histories and the agglomeration problem},
  author = {Nick Choksi and Eugene Chiang and Harold C. Connolly and Zack Gainsforth and Andrew J. Westphal},
  journal= {arXiv preprint arXiv:2009.10093},
  year   = {2021}
}

Comments

Final MNRAS accepted and proofed version. Minor updates to Sections 2.3 and 3.2 discussing the treatment of the nebular headwind in previous work, plus additional references

R2 v1 2026-06-23T18:41:57.932Z